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Probing strong-field QED in beam-plasma collisions

Authors :
Aime Matheron
Pablo San Miguel Claveria
Robert Ariniello
Henrik Ekerfelt
Frederico Fiuza
Spencer Gessner
Max Gilljohann
Mark Hogan
Christoph Keitel
Alexander Knetsch
Michael Litos
Yuliia Mankovska
Samuele Montefiori
Zan Nie
Brendan O'Shea
John Ryan Peterson
Doug Storey
Yipeng Wu
Xinlu Xu
Viktoriia Zakharova
Xavier Davoine
Laurent Gremillet
Matteo Tamburini
Sebastien Corde
Laboratoire d'optique appliquée (LOA)
École Nationale Supérieure de Techniques Avancées (ENSTA Paris)-École polytechnique (X)-Centre National de la Recherche Scientifique (CNRS)
Direction des Applications Militaires (DAM)
Commissariat à l'énergie atomique et aux énergies alternatives (CEA)
Source :
Commun.Phys., Commun.Phys., 2023, 6 (1), pp.141. ⟨10.1038/s42005-023-01294-x⟩
Publication Year :
2022
Publisher :
arXiv, 2022.

Abstract

Ongoing progress in laser and accelerator technology opens new possibilities in high-field science, notably for the study of the largely unexplored strong-field QED regime where electron-positron pairs can be created directly from light-matter or even light-vacuum interactions. Laserless strategies such as beam-beam collisions have also been proposed with the prospect of pushing strong-field quantum electrodynamics (SFQED) in the nonpertubative regime. Here we report on an original concept to probe strong-field QED by harnessing the interaction between an electron beam and a solid target. When a high-density, ultrarelativistic beam impinges onto an even denser plasma, the beam self fields are reflected at the plasma boundary. In the rest frame of the beam electrons, these fields can exceed the Schwinger field, leading to strong-field QED effects such as quantum nonlinear inverse Compton scattering and nonlinear Breit-Wheeler electron-positron pair creation. We show that such beam-plasma collisions can produce results similar to beam-beam collisions with the advantage of a much simpler experimental setup including the automatic overlap between the beam and the reflected fields. This scenario opens the way to precision studies of strong-field QED, with measurable clear signatures in terms of gamma-ray photon and pair production, and thus is a very promising milestone on the path towards laserless studies of nonperturbative SFQED.

Details

Database :
OpenAIRE
Journal :
Commun.Phys., Commun.Phys., 2023, 6 (1), pp.141. ⟨10.1038/s42005-023-01294-x⟩
Accession number :
edsair.doi.dedup.....e5c4a861d71280dfd94725df42dca939
Full Text :
https://doi.org/10.48550/arxiv.2209.14280